A prediction method of milling chatter stability for complex surface mold

被引:0
|
作者
Xianli Liu
Rongyi Li
Shi Wu
Lin Yang
Caixu Yue
机构
[1] Harbin University of Science and Technology,The Key Lab of National and Local United Engineering for “High
关键词
Ball-end milling tool; Stability domain; Free surface; Dynamic chip thickness; The time-domain simulation;
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes a kind of milling chatter stability prediction method used for the stability of milling free-form surface based on the time-domain. Firstly, a dynamic equation is established by considering the influence of mold surface curvature and cutting tool lead angle on dynamic chip thickness without deformation. Then, the multi-delay milling system vibration displacement, which is given by the ratio of dynamic chip thickness and the static chip thickness as the threshold, was calculated based on the numerical method. Finally, the chatter stability domain based on the full-discretization method of milling chatter stability domain is compared to analyze the influence of the characteristics of free surface curvature on the chatter stability domain. The results of the experiment show that the time-domain simulation method can reveal the influence of different processing areas of free-form surface mold on the instability mechanism of the system. The change trend of milling chatter stability domain was found to be consistent with the experimental results.
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页码:2637 / 2648
页数:11
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